EP3580182A1 - Water treatment - Google Patents
Water treatmentInfo
- Publication number
- EP3580182A1 EP3580182A1 EP18705722.9A EP18705722A EP3580182A1 EP 3580182 A1 EP3580182 A1 EP 3580182A1 EP 18705722 A EP18705722 A EP 18705722A EP 3580182 A1 EP3580182 A1 EP 3580182A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- mbbr
- reactor
- water
- aeration
- flow
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F3/00—Biological treatment of water, waste water, or sewage
- C02F3/006—Regulation methods for biological treatment
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F3/00—Biological treatment of water, waste water, or sewage
- C02F3/02—Aerobic processes
- C02F3/08—Aerobic processes using moving contact bodies
- C02F3/085—Fluidized beds
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F3/00—Biological treatment of water, waste water, or sewage
- C02F3/02—Aerobic processes
- C02F3/12—Activated sludge processes
- C02F3/20—Activated sludge processes using diffusers
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12M—APPARATUS FOR ENZYMOLOGY OR MICROBIOLOGY; APPARATUS FOR CULTURING MICROORGANISMS FOR PRODUCING BIOMASS, FOR GROWING CELLS OR FOR OBTAINING FERMENTATION OR METABOLIC PRODUCTS, i.e. BIOREACTORS OR FERMENTERS
- C12M1/00—Apparatus for enzymology or microbiology
- C12M1/12—Apparatus for enzymology or microbiology with sterilisation, filtration or dialysis means
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12M—APPARATUS FOR ENZYMOLOGY OR MICROBIOLOGY; APPARATUS FOR CULTURING MICROORGANISMS FOR PRODUCING BIOMASS, FOR GROWING CELLS OR FOR OBTAINING FERMENTATION OR METABOLIC PRODUCTS, i.e. BIOREACTORS OR FERMENTERS
- C12M25/00—Means for supporting, enclosing or fixing the microorganisms, e.g. immunocoatings
- C12M25/16—Particles; Beads; Granular material; Encapsulation
- C12M25/20—Fluidized bed
-
- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2209/00—Controlling or monitoring parameters in water treatment
- C02F2209/14—NH3-N
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2209/00—Controlling or monitoring parameters in water treatment
- C02F2209/22—O2
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2209/00—Controlling or monitoring parameters in water treatment
- C02F2209/44—Time
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02W—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO WASTEWATER TREATMENT OR WASTE MANAGEMENT
- Y02W10/00—Technologies for wastewater treatment
- Y02W10/10—Biological treatment of water, waste water, or sewage
Definitions
- This invention relates generally to water treatment and more particularly to moving bed biofilm reactors (MBBRs) used in the treatment of waste water.
- MBBRs moving bed biofilm reactors
- MBBRs were invented in the late 1980s and have been commercialised worldwide.
- An example of a MBBR is described in US5458779.
- a MBBR comprises a tank or reactor in which a plurality of carriers is located together with the waste water to be treated.
- the surface of each carrier provides a site for the formation and growth of biofilm.
- the carriers have a density which approximates that of water, for example carriers may be fabricated from high density polyethylene which has a density of about 0.95 g cm -3 .
- the carriers are mixed or agitated within the tank by mechanical stirrers or by air which is forced into the tank. This causes the carriers (and hence the attached biofilm) to be continuously mixed with the waste water, and thus to contact the constituents of the waste water. Contact of the waste water with the biofilm leads to the removal of the pollutants from the waste water.
- the tank is provided with a sieve or screen on the downstream portion to prevent egress of the carriers whilst allowing the cleaned water to exit the tank.
- MBBRs operate to continuously clean influent waste water. As the microbial population increases on a carrier, clumps of microorganisms may break away from the carriers. Any such solids are held in suspension by the turbulence and are discharged from the MBBR with the treated water. The solids will be settled out in a subsequent process step.
- MBBRs may be deployed as a secondary treatment stage to reduce the organic matter content (under US Environmental Protection Agency standards secondary treatment is expected to produce effluent with a monthly average of less than 30 mg/l biochemical oxygen demand (BOD) and less than 30 mg/l suspended solids). Also, MBBRs may be deployed as at least a part of a tertiary treatment stages wherein preferably up to 100% BOD and suspended solids is removed. In most countries it is a requirement that water has a certain quality before it is released. In England and Wales, discharge consents (i.e. consent to allow discharge) for discharge from a sewage treatment plant are awarded by the Environment Agency under a procedure described in Schedule 10 of the Water Resources Act 1991. Similar procedures are in place to control industrial discharges. Other countries have similar bodies which provide authorisation for discharges.
- a first aspect of the invention provides water treatment apparatus, the apparatus comprising a fluid inlet, a first MBBR and a second MBBR and a fluid outlet, and a controller or control means, wherein the first MBBR and second MBBR are connected in series such that water to be treated flows from the inlet through the first MBBR to the second MBBR and thence to the outlet and wherein the controller or control means is operable to change the flow direction such that water to be treated flows from the inlet to the second MBBR then to the first MBBR and thence to the outlet.
- a further aspect of the invention provides a method of treating waste water, the method comprising the steps of:
- the reversal of flow maintains an even development of biofilm within each MBBR.
- Biofilm within a MBBR will develop according to the pollutant load applied and will decay if the pollutant load is insufficient to support growth.
- By reversing the flow it is possible to maintain the biofilm profile in each of the serial MBBRs.
- the 'lag' MBBR may be provided with a pollutant load which is sufficient to maintain the biofilm or at least reduce the rate of decay of biofilm.
- the 'lag' MBBR (which then becomes the 'lead' MBBR) will have sufficient biofilm population to commence treatment of the influent waste water.
- the reversal of flow allows two MBBRs to operate efficiently.
- the flow reversal may occur periodically.
- the periodicity of flow reversal may be daily, for example every 12 hours, 24 hours, 36 hours or 48 hours.
- the apparatus may comprise sensors, for example water quality sensors, to determine one or more physical and/or chemical properties of the water.
- the apparatus comprises a sensor to determine one or more physical and/or chemical properties of the water to be treated. Additionally or alternatively the apparatus may comprise a sensor to determine one or more physical and/or chemical properties of the water which has been treated.
- the apparatus may comprise sensors to determine one or more physical and/or chemical properties of the water within one or other or both of the MBBRs.
- the controller may be operable to reverse the flow through the first and second MBBRs depending on parameters determined by a sensor, or by parameters determined by a plurality of sensors.
- the apparatus may comprise an ammonia sensor to determine the level of ammonia upstream, within and/or downstream thereof.
- the flow through the MBBRs may be reversed dependent upon ammonia concentration, load or flux.
- the flow direction through the apparatus can be controlled to make effective use of the biofilm within each MBBR.
- the method may comprise reversing the flow through the apparatus in dependence on an elapsed process time, and/or as a result of a characteristic of the water upstream, within or downstream of the MBBRs and/or the apparatus.
- a protocol may be deployed whereby flow reversal may occur as a function of elapsed treatment time unless a characteristic of the water upstream, within and/or downstream of one or other or both of the MBBRs passes a respective threshold, whereby the flow is reversed.
- the apparatus may comprise air blowers to aerate the fluid within each MBBR.
- Each MBBR may be provided with a sensor to detect the dissolved oxygen concentration.
- the air blowers may be controllable in dependence upon one or more operating parameters of the apparatus and/or characteristics of the water upstream, within or downstream of the respective MBBR, for example the dissolved oxygen concentration within one or both of the MBBRs.
- the apparatus may comprise a human-machine interface, whereby operating parameters of the apparatus may be selected.
- the method may comprise selecting operating parameters, for example using a HMI.
- Figure 1 shows a water treatment apparatus according to the invention
- Figure 2 shows the water treatment apparatus of Figure 1 in a second operating configuration
- FIG 3 is a schematic representation of the control system for the apparatus of Figure 1 ;
- Figures 4A and 4B are plan views of a further water treatment apparatus according to the invention in respective first and second configurations.
- a water treatment apparatus 1 having an inlet 2 for receipt of waste water WW to be treated and an outlet 3 for delivery of treated water TW.
- the apparatus 1 further comprises a first MBBR 4 having a first tank T1 and a second MBBR 5 having a second tank T2, the two MBBRs 4, 5 being connected in series via a conduit 6.
- Each Tank T1 , T2 is provided with screens S to cover the various points of egress from the tanks T1 , T2 to ensure the retention of the carriers (not shown) within the tanks T1 , T2.
- the carriers usually occupy up to 65% of the volume of each tank T1 , T2 although this may be varied depending on operating requirements.
- the inlet 2 is branched to provide two separate conduits, a first inlet conduit 2a extending to the first MBBR 4 and a second inlet conduit 2b extending to the second MBBR 5.
- Each conduit 2a, 2b is provided with respective valves 20a, 20b to control flow of waste water WW into the respective tanks T1 , T2.
- Each tank T1 , T2 is provided with respective outlet conduits 3a, 3b which converge at the outlet 3.
- the outlet conduits 3a, 3b are provide with respective valves 30a, 30b to control fluid flow therethrough.
- waste water WW flows into the inlet 2 and, because the valve 20b is closed to occlude the second inlet conduit 2b, flows along the first inlet conduit 2a and into the tank T1 of the first MBBR 4 whereupon the waste water is treated by contact with carriers (not shown) carrying biofilm.
- the contents of the tank T1 are agitated mechanically by a rotor or impeller (not shown) or are aerated by air blown or forced in the tank T1 by air blowers (not shown).
- valve 30a is closed which prevents fluid flow from the first tank T1 along the first outlet conduit 30a and thereby ensures that fluid flow from the first tank T1 is along conduit 6 and into the second tank T2 of the second MBBR 5.
- the fluid is then contacted by carriers (not shown) carrying biofilm within the second tank T2.
- carriers not shown
- the contents of the second tank T2 are agitated mechanically by a rotor or impeller (not shown) or are aerated and agitated by air forced or blown into the second tank T2 by air blowers (not shown) in the usual manner.
- Treated water TW is able to exit the second tank T2 along the second outlet conduit 3b via the open valve 30b and to the outlet 3.
- the first MBBR 4 may be termed the 'lead' reactor and the second MBBR may be termed the 'lag' reactor.
- valve 20a is closed, valve 20b is open, valve 30b is closed and valve 30a is open.
- the direction of flow along the conduit 6 has been altered and the second MBBR 5 is now the lead reactor and the first MBBR 4 is now the 'lag' reactor.
- waste water WW flows from the inlet 2 along inlet conduit 2b into the tank T2 of the second MBBR 5 along the conduit 6 and into the tank T1 of the first MBBR 4 and then along the outlet conduit 3a to deliver treated water TW to the outlet 3.
- each of the valves 20a, 20b, 30a, 30b are operably connected (indicated by dashed lines) to a controller C1.
- the controller C1 which may comprise a computer processor, is operable to alter the operating status of the valves from closed to open and vice versa to change the flow directions through the apparatus 1 and thereby to alternate flows from the configuration shown in Figure 1 to that shown in Figure 2 and back again.
- the controller C1 may be arranged to change the flow direction periodically, for example after a set time period such as 24 hours. Conveniently, if the flow direction is altered every twenty four hours this may be completed at a period of low demand on the apparatus 1 , for example during the night. Alternatively, the time period may be any other time period.
- the apparatus may be provided with one or more sensors to monitor the characteristics of the water within the apparatus 1.
- the apparatus may be provided with a sensor to monitor or determine the nature of the influent waste water WW (indicated as waste water sensor 200) and/or to monitor or determine the nature of the effluent treated water TW (indicated as treated water sensor 300).
- Each of the influent waste water sensor 200 and/or the effluent treated water sensor 300 may monitor or determine one or more physical or chemical characteristics of the fluid flowing in the respective inlet 2 or outlet 3.
- waste water sensor 200 and/or the effluent treated water sensor 300 may be connected to a second controller C2 (which may be the controller C1 or may be operably connected to the controller C1) and the output of the waste water sensor 200 and/or the effluent treated water sensor 300 may be used to determine whether or not to prompt the controller C1 to change the operating configuration of the apparatus 1 (i.e. from the configuration shown in Figure 1 to that shown Figure 2 or vice versa), depending on the monitored characteristics of the influent waste water WW and/or effluent treated water TW.
- One or both of the first MBBR 4 and the second MBBR 5 may be provided with sensors 400, 500 to monitor one or more operating characteristics within the respective reactor.
- the operating characteristics may be physical or chemical characteristics (for example dissolved oxygen concentration, nitrogen concentration and so on).
- the or each sensor 400, 500 may be operably connected to the second controller C2 and the outputs of the or each sensor 400, 500 may be used to determine if the controller C1 should be prompted to change the operating configuration of the apparatus 1 (i.e. from the configuration shown in Figure 1 to that shown Figure 2 or vice versa).
- the water treatment apparatus 1 of the invention may be used to treat water according to a control philosophy which states that the flow direction within the apparatus will reverse periodically, for example, every 24 hours.
- a more sophisticated control philosophy might state that the flow direction within the apparatus will reverse periodically, for example, every 24 hours unless one or more of the sensors 200, 300, 400, 500 detects that the respective fluid is outside of operating parameters.
- the controller C1 may be deployed to alter the flow direction through the apparatus 1 as soon as, or after detection of the characteristic outside of operating parameters.
- each reactor 4, 5 is partially filled with small plastic elements or carriers, each of which may be approximately 25 mm in diameter (suitable carriers are known from the prior art). Nitrifying bacteria attach themselves to the surfaces of the plastic elements.
- Each reactor 4, 5 is filled with wastewater WW. Air, providing oxygen for the ammonia oxidation reaction, is blown in at the base of the reactor 4, 5.
- the plastic elements are of approximately neutral buoyancy and circulate freely within the reactor 4, 5 due to the mixing effect of the aeration.
- Sieves over each influent and effluent port retain the plastic media within the reactor 4, 5. As the microbial population increases, clumps of microorganisms break away from the media. These solids are held in suspension by the turbulence within the reactor 4, 5 and are discharged with the treated effluent.
- Air is supplied by two blowers, normally (i.e. other than during the initial media conditioning period) arranged as duty and standby. Air may be introduced into each MBBR reactor via, for example, four fine bubble diffuser grids. The air supply to each grid can be isolated by actuated valves. Supplying air to only the downstream side of a reactor creates a swirling mixing pattern with a current along the surface moving away from the outlet sieves. This prevents media accumulating at the downstream end of a reactor.
- the actuated valves allow the mixing pattern to be reversed when the flow path reverses.
- An air flow modulating valve is provided for each reactor. Air lances are installed beneath each sieve to provide supplementary mixing. A sieve is only aerated when flow through it is directed outwards.
- a dissolved oxygen sensor (400, 500) is preferably installed in each MBBR 4, 5 respectively.
- An ammonia sensor 300 is preferably installed downstream of the MBBR.
- the aeration rate within an MBBR (4 or 5) is controlled to minimise power consumption while providing sufficient oxygen and mixing energy to meet the process objectives.
- the ammonia sensor measures the effluent ammonia concentration on a regular, nominally 15 minute, cycle. The ammonia measurement is used to adjust the aeration operating mode of the plant.
- HMI Human-Machine Interface
- Combined intermittent aeration allows the blower to operate at higher, more energy efficient flow rates, avoids the head loss associated with the modulating valves and maximises the mixing energy at the start of a period of aeration.
- Independent intermittent aeration provides greater operation flexibility in that different aeration cycles can be used in each reactor. If the ammonia concentration is less than the "Maximum ammonia concentration for intermittent aeration" and the Combined intermittent aeration option has been selected, the MBBRs 4, 5 are aerated intermittently by stopping and starting the blower.
- the reactors are aerated intermittently by opening and closing the appropriate (see below) aeration grid isolation valves.
- the modulating valves are driven to the "Independent intermittent aeration lead reactor modulating valve position" and the “Independent intermittent aeration lag reactor modulating valve position".
- timer timer times out the lead reactor air grid isolating valves open for the "Minimum independent intermittent aeration lead reactor on period” and until the DO concentration in the lead reactor reaches the Minimum DO in the lead reactor during intermittent aeration.
- the air flow to the lead reactor modulates to maintain the dissolved oxygen concentration in the lead reactor at the "Lead reactor low dissolved oxygen set point'.
- the lead reactor modulating valve operates between the "Lead reactor continuous aeration minimum modulating valve position" and the “lead reactor continuous aeration maximum modulating valve position".
- the modulating valve for the lag reactor is driven to the "Lag reactor continuous aeration modulating valve position".
- the blower speed is controlled to maintain the pressure in the air main at the Blower main pressure set point.
- the air flow to the lead reactor modulates to maintain the dissolved oxygen concentration in the lead reactor at the "Lead reactor high dissolved oxygen set point'.
- the lead reactor modulating valve operates between the Lead reactor continuous aeration minimum modulating valve position and the Lead reactor continuous aeration maximum modulating valve position.
- the modulating valve for the lag reactor is driven to the Lag reactor continuous aeration modulating valve position.
- the blower speed is controlled to maintain the pressure in the air main at the Blower main pressure set point.
- the lead reactor modulating valve is driven to the Lead reactor continuous aeration maximum modulating valve position. If either condition occurs while the plant is in aeration mode 1 , combined intermittent option, then the duration of each period of aeration is extended until the next cycle begins. In effect aeration is supplied continuously at a fixed rate. Similarly, if the independent aeration option has been selected aeration is supplied continuously to the lead reactor. In essence the philosophy is that if the DO is not known it is assumed to be low, representing the worst case.
- Table 1 Aeration Control Philosophy Over time the headloss across the membrane diffusers may increase causing the air flow passing through a modulating valve at a given position to drop. The actual air flows corresponding to the valve limit positions should be checked periodically (e.g. annually) using the or a installed flow meter and the set points adjusted if required.
- the automatic control system can be operated without the ammonia sensor. This option can be selected via the HMI.
- the ammonia sensor is selected out of service or is faulty or its signal is out of range, both reactors are aerated continuously with the aeration to the lead reactor under DO control to maintain the Lead reactor high dissolved oxygen set point.
- Each MBBR 4, 5 may be equipped with four separate air diffuser grids and two pairs of sieves S at opposite sides over the inlet and outlet ports.
- the longitudinal axis of each aeration grid is oriented at right angles to the sieves.
- the air supply to each grid can be isolated individually by actuated valves.
- the division of air between the grids which are receiving air can be adjusted by manual valves.
- the air grids in use during intermittent aeration can be specified via the HMI by selecting each grid, 1 - 4, in the lead reactor and the lag reactor as either on or off.
- Grid 1 is the grid beneath the outlet sieves.
- the air can be directed to only the grid beneath the outlet sieves for a period, the "Grid 1 advance start time", to initiate mixing. If the Grid 1 advance start timer is greater than zero and the Combined intermittent aeration option is selected the actuated valves supplying the selected grids other than the grid beneath the outlet sieves close when the blower stops. When the blower starts, the actuated valves supplying the selected grids other than Grid 1 open after the Grid 1 advance start timer delay. Similarly if the Independent aeration option is selected when an aeration period starts the actuated valves supplying the selected grids other than Grid 1 open after the Grid 1 advance start timer delay.
- the air grids in use during continuous aeration can be specified via the HMI by selecting each grid, 1 - 4, in the lead reactor (e.g. the first MBBR 4) and the lag reactor (e.g. the second MBBR 5) as either on or off.
- Different grid configurations can be used for intermittent and continuous aeration. This allows a configuration providing high mixing energy to be used for intermittent aeration and a configuration which maximises oxygen transfer to be used for continuous aeration.
- the grids are physically identified as A, B, C, D in each reactor.
- the allocation of each grid as 1 , 2,3, 4 changes depending on which MBBR is the lead and which is the lag.
- the numeric designation of the grids also reverses.
- the designation "Grid 1" always refers to the grid beneath the out-flowing sieves.
- Lead Reactor Grid 1 is MBBR 4 Air Grid A
- Lead Reactor Grid 2 is MBBR 4 Air Grid B
- Lead Reactor Grid 3 is MBBR 4 Air Grid C
- Lead Reactor Grid 4 is MBBR 4 Air Grid D
- Lag Reactor Grid 1 is MBBR 5 Air Grid D
- Lag Reactor Grid 2 is MBBR 5 Air Grid C
- Lag Reactor Grid 3 is MBBR 5 Air Grid B
- Lag Reactor Grid 4 is MBBR 5 Air Grid A
- Lead Reactor Grid 1 is MBBR 5 Air Grid A
- Lead Reactor Grid 2 is MBBR 5 Air Grid B
- Lead Reactor Grid 3 is MBBR 5 Air Grid C
- Lead Reactor Grid 4 is MBBR 5 Air Grid D
- Lag Reactor Grid 1 is MBBR 4 Air Grid D
- Lag Reactor Grid 2 is MBBR 4 Air Grid C
- Lag Reactor Grid 3 is MBBR 4 Air Grid B
- Lag Reactor Grid 4 is MBBR 4 Air Grid A
- the direction of flow through the two MBBRs 4, 5 reverses on a regular basis, such that the lead reactor becomes the lag reactor and vice versa. This ensures that the bacteria in the lag reactor have an adequate supply of ammonia to remain active.
- the wastewater in the former lead reactor forms the final effluent and, as such, its ammonia concentration must be below the appropriate consent standard when the flow reverses.
- the system evaluates the likely ammonia concentration in the lead reactor. During the procedure, steps are taken to minimise the ammonia concentration in the lead reactor before it becomes the lag reactor.
- a rolling average of the blower operating time over the preceding hour, the "Blower operating fraction”, is calculated.
- the HMI allows up to three times of day to be specified when flow reversal will be initiated if appropriate.
- the time of day reaches a "Flow reversal start time” the flow direction change procedure starts, providing the Blower operating fraction is less than the "Blower operating fraction to inhibit flow reversal". If the blower operating fraction is above this limit the flow reversal is deferred until the blower operating fraction drops below the limit providing the deferred time period does not exceed the "Maximum period for which flow reversal can be deferred'.
- the level in the lead reactor will be slightly higher than the level in the lag reactor. To reduce the hydraulic surge when the lead reactor becomes the lag reactor and discharges directly the inlet valves change over slightly before the outlet valves. This period, during which there is no flow through the lead reactor, also provides an opportunity to reduce the ammonia in the lead reactor before it starts to discharge final effluent.
- Step 6 Start timer equal to "Open outlet delay on reversing flow” and wait to expire 6. Open all of the air grid actuated isolating valves which are not already open and confirm open. At the end of Step 6 all eight air grids should be in use to avoid a transient state with no air valves open as the aeration taper reverses.
- a high level switch may be installed in each MBBR 4, 5. If either switch operates the actuated valve supplying air to the respective outlet sieves opens for 30 seconds and then returns to normal control. An alarm is raised. If the high level switch is still activated after scouring the sieves for 30 seconds the MBBR inlet wastewater valve closes and an alarm is raised. The flow reversal timer is frozen so that a flow reversal procedure cannot be initiated. Aeration continues as normal.
- the programmable logic controller opens the inlet and outlet water valves on the remaining reactor and when these are confirmed open closes the inlet and outlet water valves on the reactor to be bypassed.
- the DO set point for the remaining reactor is set to the Lead reactor high dissolved oxygen set point.
- the blower is controlled directly by the DO and the reactor is aerated continuously. The blower is prevented from operating at a speed below "The minimum blower speed to maintain mixing in a single reactor".
- the air isolating valves on the bypassed tank are closed.
- the air modulating valve on the active reactor is driven fully open.
- the air grid actuated isolating valves on the active reactor which are not already open are opened. This allows the air flows to all four grids to be adjusted using the manual flow balancing valves in order to produce a suitable mixing pattern.
- a media transfer pipe equipped with an isolating valve connects the two tanks T1 , T2. Its purpose is to facilitate the transfer of media from one reactor to the other to allow a reactor to be drained for maintenance. During media transfer both reactors are aerated continuously. This can be accomplished by selecting manual control mode 2 or 3 as described below. The oxygen demand in the downstream reactor will increase steadily as the media migrates.
- the Lead reactor continuous aeration maximum modulating valve position is set to a value just greater than the Lead reactor continuous aeration minimum modulating valve position and the Lag reactor continuous aeration modulating valve position is increased until the blower is operating close to its full output. When the media has been transferred the reactor to be drained can be bypassed.
- the plant In manual control the plant can be put into one of the three aeration modes described above.
- the following modes can be selected via the HMI
- This facility allows the correct operation of a specific operating mode to be checked irrespective of the prevailing ammonia concentration.
- Aeration lances may be provided beneath each sieve to provide supplementary mixing in the vicinity of outlet ports.
- Each pair of sieves has a separate actuated valve to isolate the air supply. When the reactor sequence is reversed the air supplies to the sieves over the inlet ports are isolated.
- the aeration mode for the sieves over the outlet ports in both reactors can be selected from:
- Mode 2 the sieve aeration is off when the reactor is not aerated and operates continuously when the reactor is aerated continuously or intermittently.
- Modes 3 and 4 the sieve aeration is off when the reactor is not aerated and synchronised when the reactor is aerated intermittently in which case the sieves are aerated when the grids are aerated. Intermittent operation of the sieve aeration in Mode 3 and continuous operation of the sieve aeration in Mode 4 only occurs when the reactor is aerated continuously. Intermittent sieve aeration is controlled by "Sieve aeration on" and "Sieve aeration off" timers.
- the two variable-speed blowers operate in a duty standby configuration so as to maintain an operator-adjustable set-point pressure in the common blower air main or a DO set point as described above.
- VSD variable speed drive
- Blower B auto duty period • Blower duty operation : auto or manual
- the duty assist blower operation facility is solely intended for use during commissioning.
- the plastic When the media is first added to the tanks the plastic is hydrophobic and difficult to "wet". Air bubbles tend to become attached to the media increasing its buoyancy.
- the media can form a static layer part in and part out of the water. Increasing the aeration rate can help to entrain media from the underside of the layer so that the media is gradually drawn into suspension. Once in suspensions the surface characteristics change and the hydrophobicity decreases.
- blower A duty period and the “Blower B duty period” are operator adjustable. While in manual blower duty operation, the operator can select the duty blower. Operation of blowers A and B together is only permitted when the MBBR is in manual control and Mode 3 has been selected.
- duty blower start timer a pre-set period
- blower stop timer a pre-set period
- the PLC inhibits the blowers unless:
- At least one MBBR actuated valve is more opened than a preset minimum open position (the "Minimum modulating valve position to inhibit blower operation').
- At least two air grid isolating actuated valves which are downstream of open (as defined above) modulating air valves are open
- Each blower is fitted with a discharge high pressure switch, a discharge low pressure switch and a 'filter restriction' pressure switch. In the event of either condition the PLC will fail the blower. This is latched until reset at HMI. If a duty blower fails then the PLC will swap the duty to run the other blower.
- the PLC generates air main high and low pressure alarms in relation to "Air main high pressure” and "Air main low pressure” set points.
- the low pressure alarm is only generated if a blower is operating. There are no consequent control actions.
- the setpoints used by the control system and their anticipated values are summarised below. These are adjustable via the HMI.
- FIG. 4A and 4B there is shown a further embodiment of the invention comprising apparatus V having a first MBBR 4' and a second MBBR 5'.
- Each of the tanks T1 ', T2' are provided with drain down valves V1 , V2.
- the operation of the apparatus 1 ' is as set out above in relation to the first embodiment and/or as set out above in relation to the Example. It will also be appreciated by those skilled in the art that any number of combinations of the aforementioned features and/or those shown in the appended drawings provide clear advantages over the prior art and are therefore within the scope of the invention described herein.
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- Bioinformatics & Cheminformatics (AREA)
- Water Supply & Treatment (AREA)
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- Biological Treatment Of Waste Water (AREA)
- Purification Treatments By Anaerobic Or Anaerobic And Aerobic Bacteria Or Animals (AREA)
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| GBGB1702272.4A GB201702272D0 (en) | 2017-02-10 | 2017-02-10 | Water treatment |
| PCT/GB2018/050372 WO2018146488A1 (en) | 2017-02-10 | 2018-02-09 | Water treatment |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3580182A1 true EP3580182A1 (en) | 2019-12-18 |
| EP3580182B1 EP3580182B1 (en) | 2022-03-30 |
Family
ID=58461991
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP18705722.9A Active EP3580182B1 (en) | 2017-02-10 | 2018-02-09 | Water treatment |
Country Status (13)
| Country | Link |
|---|---|
| US (1) | US11685674B2 (en) |
| EP (1) | EP3580182B1 (en) |
| CN (1) | CN110785383A (en) |
| AU (1) | AU2018218530B2 (en) |
| BR (1) | BR112019016535B1 (en) |
| CA (1) | CA3053084A1 (en) |
| DK (1) | DK3580182T3 (en) |
| ES (1) | ES2920512T3 (en) |
| GB (1) | GB201702272D0 (en) |
| MX (1) | MX2019009583A (en) |
| MY (1) | MY194245A (en) |
| PL (1) | PL3580182T3 (en) |
| WO (1) | WO2018146488A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR3050199B1 (en) * | 2016-04-18 | 2022-01-21 | Degremont | REGULATION OF A CENTRALIZED AIR PRODUCTION SYSTEM FOR A WASTEWATER TREATMENT PLANT |
| WO2019113459A1 (en) * | 2017-12-07 | 2019-06-13 | Headworks International | Moving bed biofilm reactor system for selenium removal from water and wastewater |
| KR20250004726A (en) * | 2022-04-22 | 2025-01-08 | 샘코 테크놀로지즈 인코포레이티드 | Wastewater treatment systems for electronic devices and semiconductor manufacturing facilities |
Family Cites Families (13)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| ATE112754T1 (en) | 1990-01-23 | 1994-10-15 | Kaldnes Miljoteknologi As | METHOD AND REACTOR FOR PURIFICATION OF WATER. |
| GB9116172D0 (en) * | 1991-07-26 | 1991-09-11 | Thames Water Utilities | A method of and apparatus for treating a fluid |
| US6630067B2 (en) * | 2000-06-13 | 2003-10-07 | Trustees Of The University Of Pennsylvania | Methods and apparatus for biological treatment of aqueous waste |
| KR100784934B1 (en) * | 2007-06-01 | 2007-12-11 | (주)이엔바이오21 | Recirculating Nutrients Processing Equipment Using Floating Media |
| KR100796456B1 (en) * | 2007-06-22 | 2008-01-21 | 태화강재산업 주식회사 | Sewage Treatment Process Control System and Control Method |
| US8268173B2 (en) | 2010-05-20 | 2012-09-18 | Veolia Water Solutions & Technologies Support | Controlled aeration of integrated fixed-film activated sludge bioreactor systems for the treatment of wastewater |
| US8268169B2 (en) * | 2010-12-20 | 2012-09-18 | Palo Alto Research Center Incorporated | Membrane bioreactor (MBR) and moving bed bioreactor (MBBR) configurations for wastewater treatment |
| US8864993B2 (en) * | 2012-04-04 | 2014-10-21 | Veolia Water Solutions & Technologies Support | Process for removing ammonium from a wastewater stream |
| US20140238931A1 (en) * | 2013-02-26 | 2014-08-28 | Veolia Water Solutions & Technologies Support | Process for Treating Municiple Wastewater Employing Two Sequencing Biofilm Batch Reactors |
| CN105645589B (en) * | 2014-11-14 | 2020-08-04 | 重庆大学 | Deep-bed constructed wetland reactor capable of converting operation modes |
| CN105084534B (en) * | 2015-09-09 | 2017-03-29 | 青岛思普润水处理股份有限公司 | A kind of rear-mounted denitrification operation method based on MBBR |
| CN105641996A (en) * | 2016-03-14 | 2016-06-08 | 大连宇都环境技术材料有限公司 | Solid-liquid separator for water treatment and water treatment pond |
| CN205917068U (en) * | 2016-07-19 | 2017-02-01 | 樊志金 | Integration SBRMBBR reactor |
-
2017
- 2017-02-10 GB GBGB1702272.4A patent/GB201702272D0/en not_active Ceased
-
2018
- 2018-02-09 MX MX2019009583A patent/MX2019009583A/en unknown
- 2018-02-09 CA CA3053084A patent/CA3053084A1/en active Pending
- 2018-02-09 EP EP18705722.9A patent/EP3580182B1/en active Active
- 2018-02-09 BR BR112019016535-5A patent/BR112019016535B1/en active IP Right Grant
- 2018-02-09 ES ES18705722T patent/ES2920512T3/en active Active
- 2018-02-09 MY MYPI2019004587A patent/MY194245A/en unknown
- 2018-02-09 CN CN201880020652.8A patent/CN110785383A/en active Pending
- 2018-02-09 WO PCT/GB2018/050372 patent/WO2018146488A1/en not_active Ceased
- 2018-02-09 US US16/484,932 patent/US11685674B2/en active Active
- 2018-02-09 PL PL18705722.9T patent/PL3580182T3/en unknown
- 2018-02-09 DK DK18705722.9T patent/DK3580182T3/en active
- 2018-02-09 AU AU2018218530A patent/AU2018218530B2/en active Active
Also Published As
| Publication number | Publication date |
|---|---|
| MX2019009583A (en) | 2019-11-21 |
| PL3580182T3 (en) | 2022-07-25 |
| BR112019016535B1 (en) | 2023-12-19 |
| GB201702272D0 (en) | 2017-03-29 |
| MY194245A (en) | 2022-11-24 |
| WO2018146488A1 (en) | 2018-08-16 |
| CN110785383A (en) | 2020-02-11 |
| BR112019016535A2 (en) | 2020-03-31 |
| DK3580182T3 (en) | 2022-07-04 |
| EP3580182B1 (en) | 2022-03-30 |
| ES2920512T3 (en) | 2022-08-04 |
| CA3053084A1 (en) | 2018-08-16 |
| AU2018218530A1 (en) | 2019-09-05 |
| US11685674B2 (en) | 2023-06-27 |
| AU2018218530B2 (en) | 2023-10-05 |
| US20190382295A1 (en) | 2019-12-19 |
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